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I don't understand difference between template arguments

template <class T>
class C
   T t;

void foo()
   C<void ()> c1; //isn't compiled
   C<void (*)()> c2;

What is the type void ()? Such kind of types is used in boost::function..

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void() is some callable entity that has no parameters and returns void. E.g. a function void foo(). – juanchopanza Apr 25 '13 at 10:12
void (*)() is a pointer to said entity. – Alex Apr 25 '13 at 10:13

3 Answers 3

void() is a function type. void(*)() is a pointer type. In C++ you cannot have variables of function type, so T t; doesn't compile when T is void().

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I have never heard about function types.. what can i do with them, if i cannot declare variable? – user2319183 Apr 25 '13 at 10:21
@user2319183: You can use them as template parameters, or to derive function pointer types :-) (Check out how std::function works.) – Kerrek SB Apr 25 '13 at 10:31
Thank you! I'll check) – user2319183 Apr 25 '13 at 10:34


C<void ()> c1;
C<void (*)()> c2;

compiler expects you're passing pointer to a function signature. and first one is not a pointer.

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The first void() is a function, whereas the second void(*)() is a pointer to a function.

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void() is a type, not a function. Similarly for the second. – Kerrek SB Apr 25 '13 at 10:32
@Kerrek SB The question stated "What is the type void ()", so answering "it is a function" implies that is its type, not that it is actually a function. – TheDarkKnight Apr 25 '13 at 10:46

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